A mixer for dynamically configuring the main components of float glass
By designing a dynamically configured mixer of the main components of float glass, using mixing components, intermittent discharge mechanisms and restriction mechanisms, the complexity of the dynamically configured mixing process of raw materials in float glass production is solved, automatic control and precise mixing are achieved, and production efficiency is improved.
Patent Information
- Application Number
- CN202211349564.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-10-31
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2042-10-31
AI Technical Summary
In the production of float glass, the mixing process of raw materials is dynamically configured in proportion to the complexity of the mixing process, and the conveying rate needs to be manually controlled, which can easily lead to complex operation and errors.
A dynamically configured mixer with the main components of float glass is designed, including a mixing barrel, a breaking discharge mechanism and a restricting mechanism. The motor drives the transmission rod to drive the stirring leaves to stir. The intermittent discharge assembly is intermittently transported through the inclined block to bring animal material, and the triggering component control limit plate adjusts the height of the inclined block to stop the discharge.
Automatic control is realized, reducing manual operation, improving the accuracy and efficiency of the mixing process, and reducing error risk.
Smart Images

Figure CN115722140B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the field of float glass production, in particular to a mixer for dynamically configuring main components of float glass according to ratio. Background Art
[0002] Float glass is made of sea sand, quartz sandstone powder, soda ash, dolomite and other raw materials. It is melted at high temperature in a melting furnace. The molten glass flows continuously from the pool kiln and floats on the surface of the molten metal. It is spread into a glass strip with uniform thickness and flame polished. After cooling and hardening, it is separated from the molten metal and then annealed and cut into transparent, colorless flat glass.
[0003] Before the production of float glass, the raw materials need to be mixed according to the ratio. Generally, a certain amount of raw materials is weighed and then slowly conveyed into the mixer. The mixer will stir and mix the materials and continue to stir for a certain period of time after the raw materials are added. However, during the raw material addition process, the conveying rate generally needs to be manually controlled. After the addition is completed, the conveying port needs to be closed in time to prevent excessive addition of raw materials, which makes the operation too complicated and prone to errors. Summary of the invention
[0004] The object of the present invention is to provide a mixer for dynamically configuring the main components of float glass according to the ratio, so as to solve the problems raised in the above background technology.
[0005] To achieve the above object, the present invention provides the following technical solutions:
[0006] A mixer for dynamically configuring the main components of float glass according to a ratio, comprising a mixing barrel, on which a plurality of fixed plates arranged equidistantly in a circle are fixedly mounted, and a support plate and a material storage barrel for containing required materials are fixed on the fixed plates, characterized in that the mixer for dynamically configuring the main components of float glass according to a ratio also includes:
[0007] A stirring component, arranged on the support plate and placed in the stirring barrel, the stirring component can stir the material in the stirring barrel;
[0008] An intermittent feeding mechanism is arranged on the material storage barrel and connected to the stirring assembly, the intermittent feeding mechanism comprises an intermittent feeding assembly and a tilting block, and the stirring assembly can drive the intermittent feeding assembly to move through the tilting block, so that the material in the material storage barrel is intermittently transported to the stirring barrel;
[0009] A limiting mechanism is arranged in the mixing barrel and connected to the intermittent feeding assembly. The limiting mechanism is used to control the height of the tilting block through the intermittent feeding assembly. A trigger mechanism is arranged on the support plate and is connected to the mixing assembly and cooperates with the limiting mechanism. The trigger mechanism includes a trigger assembly and a limit plate. The trigger mechanism can drive the limiting mechanism to move through the limit plate to adjust the height of the tilting block through the intermittent feeding assembly.
[0010] As a further solution of the present invention: the stirring assembly includes a motor fixedly mounted on the support plate, a transmission rod connected to the motor output shaft is rotatably mounted on the support plate, a plurality of groups of stirring blades equidistantly arranged in a circle are fixed on the transmission rod, a cam cooperating with the tilting block is also fixed on the transmission rod, and the transmission rod is connected to the trigger mechanism.
[0011] As a further solution of the present invention: the intermittent unloading assembly includes a hollow rod fixedly installed in the storage barrel, the hollow rod is provided with a No. 1 discharge groove, and the hollow rod is also provided with symmetrically arranged limit grooves. The storage barrel is provided with a discharge structure connected to the hollow rod, and the discharge structure is connected to the limiting mechanism and fixedly connected to the tilting block.
[0012] As a further solution of the present invention: the material discharging structure includes a material guide pipe movably installed in the hollow rod, a No. 2 material discharging groove opened on the material guide pipe, and a No. 1 spring fixedly installed in the hollow rod and connected to the material guide pipe; a limit rod engaged with the limit groove is fixed on the material guide pipe, and the material guide pipe is connected to the limiting mechanism and fixedly connected to the tilting block.
[0013] As a further solution of the present invention: the limiting mechanism includes a fixing ring fixedly installed on the material guiding tube, a fixing sleeve fixedly installed on the material storage barrel, an elastic component arranged in the mixing barrel and connected to the fixing sleeve and the fixing ring, and an inclined groove is provided on the elastic component, and the inclined groove cooperates with the limiting plate.
[0014] As a further solution of the present invention: the elastic component includes a movable rod movably installed in the fixed sleeve, the movable rod is provided with a through slot, a partition plate engaged with the through slot is fixed on the fixed sleeve, a No. 2 spring abutting against the movable rod is fixed on the partition plate, and the movable rod abuts against the fixed ring.
[0015] As a further solution of the present invention: the trigger assembly includes a baffle fixedly installed in the mixing barrel, a static contact is fixed on the baffle, a Maltese cross movement structure connected to the transmission rod is arranged in the mixing barrel, a moving contact cooperating with the static contact is fixed on the Maltese cross movement structure, and the Maltese cross movement structure is fixedly connected to the limit plate.
[0016] As a further solution of the present invention: the Maltese cross movement structure includes a driving wheel fixedly mounted on the transmission rod, a screw rod rotatably mounted between the support plate and the baffle, and a driven wheel fixedly mounted on the screw rod and cooperating with the driving wheel, and a driven member connected to the screw rod is arranged in the mixing barrel, and the driven member is fixedly connected to the moving contact and the limit plate.
[0017] As a further solution of the present invention: the follower includes a threaded sleeve movably mounted on the screw rod, a connecting plate fixedly mounted on the threaded sleeve, and a movable sleeve movably mounted on the transmission rod, the movable sleeve is fixedly connected to the connecting plate and the limit plate, and the threaded sleeve is fixedly connected to the moving contact.
[0018] Compared with the prior art, the beneficial effect of the present invention is that: the present application can drive the intermittent feeding component to move through the tilting block while the stirring component stirs the material in the stirring barrel, so that the material in the storage barrel is intermittently transported to the stirring barrel; when the material conveying amount reaches the required requirement, the stirring component will also drive the limit plate to move through the trigger component, so that the limiting mechanism is separated from the intermittent feeding component; under the action of the intermittent feeding component, the height of the tilting block is adjusted so that the tilting block no longer cooperates with the stirring component, thereby stopping feeding; after the stirring component continues to stir the material for a certain period of time, the trigger component controls the stirring component to stop working. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 The present invention is a structural schematic diagram of an embodiment of a mixer for dynamically configuring the main components of float glass according to ratio.
[0020] Figure 2 A schematic structural diagram of another angle in an embodiment of a mixer for dynamically configuring the main components of float glass.
[0021] Figure 3 A schematic diagram of a half-section structure of an embodiment of a mixer for dynamically configuring the main components of float glass.
[0022] Figure 4 for Figure 3 A schematic diagram of the enlarged structure at point A in the middle.
[0023] Figure 5A schematic diagram of the connection relationship between a limiting mechanism and a partial intermittent feeding mechanism in an embodiment of a mixer for dynamically configuring the main components of float glass.
[0024] Figure 6 The present invention is a schematic diagram of the explosion structure of the intermittent feeding mechanism and the limiting mechanism in one embodiment of a mixer for dynamically configuring the main components of float glass.
[0025] Figure 7 A schematic diagram of the connection relationship between a part of the trigger mechanism and a part of the stirring assembly in one embodiment of a mixer for dynamically configuring the main components of float glass.
[0026] Figure 8 A schematic diagram of a partially exploded structure of an embodiment of a mixer for dynamically configuring the main components of float glass.
[0027] In the figure: 1. mixing barrel; 2. fixed plate; 3. support plate; 4. motor; 5. transmission rod; 6. mixing blade; 7. driving wheel; 8. driven wheel; 9. screw rod; 10. threaded sleeve; 11. connecting plate; 12. movable sleeve; 13. limit plate; 14. moving contact; 15. baffle; 16. static contact; 17. cam; 18. storage barrel; 19. hollow rod; 20. No. 1 discharge trough; 21. No. 1 spring; 22. material guide pipe; 23. No. 2 discharge trough; 24. tilting block; 25. fixing ring; 26. fixing sleeve; 27. movable rod; 28. inclined groove; 29. No. 2 spring; 30. partition. DETAILED DESCRIPTION
[0028] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0029] In addition, when an element in the present invention is referred to as being "fixed to" or "disposed on" another element, it may be directly on the other element or there may be a central element. When an element is considered to be "connected to" another element, it may be directly connected to the other element or there may be a central element at the same time. The terms "vertical", "horizontal", "left", "right" and similar expressions used herein are for illustrative purposes only and are not intended to be the only embodiment.
[0030] See also Figures 1 to 8In an embodiment of the present invention, a mixer for dynamically configuring the main components of float glass according to a ratio comprises a mixing barrel 1, on which a plurality of fixed plates 2 arranged equidistantly in a circle are fixedly mounted, on which a support plate 3 and a storage barrel 18 for holding required materials are fixed, characterized in that the mixer for dynamically configuring the main components of float glass according to a ratio further comprises:
[0031] A stirring assembly is arranged on the support plate 3 and placed in the stirring barrel 1. The stirring assembly can stir the material in the stirring barrel 1. The stirring assembly includes a motor 4 fixedly mounted on the support plate 3. A transmission rod 5 connected to the output shaft of the motor 4 is rotatably mounted on the support plate 3. A plurality of stirring blades 6 equidistantly arranged in a circle are fixed on the transmission rod 5. A cam 17 cooperating with the tilting block 24 is also fixed on the transmission rod 5. The transmission rod 5 is connected to the trigger mechanism.
[0032] See also Figure 1-3 , Figure 7 It should be noted that there are four fixed plates 2 and two storage barrels 18. Different materials are placed in the two storage barrels 18. When the materials need to be stirred, the motor 4 works to drive the transmission rod 5 to rotate, thereby driving the stirring blade 6 to rotate. Under the action of the stirring blade 6, the material is stirred, and the transmission rod 5 also drives the cam 17 to rotate.
[0033] The intermittent feeding mechanism is arranged on the storage barrel 18 and connected to the stirring assembly. The intermittent feeding mechanism includes an intermittent feeding assembly and a tilting block 24. The stirring assembly can drive the intermittent feeding assembly to move through the tilting block 24, so that the material in the storage barrel 18 is intermittently transported to the stirring barrel 1. The intermittent feeding assembly includes a hollow rod 19 fixedly installed in the storage barrel 18, and a first discharge groove 20 is provided on the hollow rod 19. The hollow rod 19 is also provided with a symmetrically arranged limit groove. The storage barrel 18 A discharging structure connected to the hollow rod 19 is provided on it, and the discharging structure is connected to the limiting mechanism and fixedly connected to the tilting block 24, wherein the discharging structure includes a guide tube 22 movably installed in the hollow rod 19, a No. 2 discharging groove 23 opened on the guide tube 22, and a No. 1 spring 21 fixedly installed in the hollow rod 19 and connected to the guide tube 22, a limiting rod engaged with the limiting groove is fixed on the guide tube 22, and the guide tube 22 is connected to the limiting mechanism and fixedly connected to the tilting block 24.
[0034] See also Figure 1-3 , Figure 5-6, further, the tilting block 24 is arranged in an inclined shape, and the inclined surface cooperates with the cam 17. In the initial state, the cam 17 and the tilting block 24 are in a separated state, and the No. 1 spring 21 is in a stretched state. Under the action of the limiting mechanism, the cam 17 and the tilting block 24 are in the same horizontal plane, and the guide tube 22 has not moved to the end of the stroke in the hollow rod 19. The No. 2 discharge chute 23 is located above the No. 1 discharge chute 20. At this time, the material in the storage barrel 18 cannot be discharged. When the material in the storage barrel 18 needs to be transported to the mixing barrel 1, the cam 17 rotates. When the long axis of the cam 17 abuts against the inclined surface of the tilting block 24, under the action of the cam 17, the tilting block 24 is driven to move toward the bottom of the mixing barrel 1, and the guide tube 22 is driven along the hollow rod 19. , thereby driving the No. 2 discharge chute 23 to move, so that the No. 1 spring 21 is stretched. When the No. 2 discharge chute 23 moves to the position connected with the No. 1 discharge chute 20, the material in the storage barrel 18 will enter the guide pipe 22 through the discharge chute and be transported to the mixing barrel 1. When the tilting block 24 moves to the end of the stroke, the No. 2 discharge chute 23 moves to the position overlapping with the No. 1 discharge chute 20. At this time, the conveying rate of the guide pipe 22 reaches the maximum. When the long axis of the cam 17 is separated from the tilting block 24, the No. 1 spring 21 elastically contracts and drives the guide pipe 22 to move toward the hollow rod 19, so that the No. 1 discharge chute 20 and the No. 2 discharge chute 23 are in a separated state. At this time, the guide pipe 22 stops unloading, and the above steps are repeated to achieve the purpose of intermittent unloading.
[0035] A limiting mechanism is arranged in the mixing barrel 1 and connected to the intermittent feeding component. The limiting mechanism is used to control the height of the tilting block 24 through the intermittent feeding component. The limiting mechanism includes a fixed ring 25 fixedly installed on the guide tube 22, a fixed sleeve 26 fixedly installed on the storage barrel 18, and an elastic component arranged in the mixing barrel 1 and connected to the fixed sleeve 26 and the fixed ring 25. The elastic component is provided with an inclined groove 28, and the inclined groove 28 cooperates with the limit plate 13, wherein the elastic component includes a movable rod 27 movably installed in the fixed sleeve 26, the movable rod 27 is provided with a through groove, the fixed sleeve 26 is fixed with a partition 30 engaged with the through groove, the partition 30 is fixed with a No. 2 spring 29 abutting against the movable rod 27, and the movable rod 27 abuts against the fixed ring 25.
[0036] See also Figure 3-6, to be more specific, in the initial state, the second spring 29 is in a slightly compressed state, so that the movable rod 27 is located at the end of the stroke away from the transmission rod 5, and the movable rod 27 abuts against the fixed ring 25, so that the first spring 21 is in a stretched state, and the inclined slot 28 is arranged in an inclined shape. After the material conveying in the storage barrel 18 reaches a certain amount, it is necessary to stop conveying the material. Under the action of the transmission rod 5, the trigger assembly is driven to move, thereby driving the limit plate 13 to move. When the limit plate 13 moves to abut the inclined surface of the inclined slot 28, under the action of the limit plate 13, the movable rod 27 is driven to move in the direction away from the fixed ring 25, so that the second spring 29 is compressed. When the movable rod 27 moves to a position separated from the fixed ring 25, the first spring 21 elastically contracts at this time and drives the guide tube 22 to move toward the inside of the hollow rod 19, so that the height of the tilting block 24 changes. When the cam 17 continues to rotate, it no longer cooperates with the tilting block 24, so that the storage barrel 18 stops unloading.
[0037] The support plate 3 is provided with a trigger mechanism connected to the stirring assembly and cooperating with the limiting mechanism, the trigger mechanism includes a trigger assembly and a limit plate 13, the trigger mechanism can drive the limit mechanism to move through the limit plate 13, so as to adjust the height of the tilting block 24 through the intermittent feeding assembly, the trigger assembly includes a baffle 15 fixedly installed in the stirring barrel 1, a static contact 16 is fixed on the baffle 15, a Maltese cross movement structure connected to the transmission rod 5 is provided in the stirring barrel 1, a moving contact 14 cooperating with the static contact 16 is fixed on the Maltese cross movement structure, the Maltese cross movement structure is fixedly connected to the limit plate 13, wherein the Maltese cross movement The structure includes a driving wheel 7 fixedly mounted on the transmission rod 5, a screw rod 9 rotatably mounted between the support plate 3 and the baffle 15, and a driven wheel 8 fixedly mounted on the screw rod 9 and cooperating with the driving wheel 7. A driven member connected to the screw rod 9 is arranged in the mixing barrel 1, and the driven member is fixedly connected to the moving contact 14 and the limit plate 13. The driven member mentioned above includes a threaded sleeve 10 movably mounted on the screw rod 9, a connecting plate 11 fixedly mounted on the threaded sleeve 10, and a movable sleeve 12 movably mounted on the transmission rod 5. The movable sleeve 12 is fixedly connected to the connecting plate 11 and the limit plate 13, and the threaded sleeve 10 is fixedly connected to the moving contact 14.
[0038] See also Figure 3 , Figure 7-8Finally, the limit plate 13 is set in an L shape. In the initial state, the threaded sleeve 10 is located at the end of the stroke away from the baffle 15, and the moving contact 14 and the static contact 16 are in a separated state. When the transmission rod 5 rotates, the driving wheel 7 is driven to rotate, thereby driving the driven wheel 8 to rotate intermittently, so that the screw rod 9 rotates intermittently. When the screw rod 9 rotates, the threaded sleeve 10 is driven to move, thereby driving the movable sleeve 12 to move along the length direction of the transmission rod 5 through the connecting plate 11. The transmission rod 5 and the connecting plate 11 have a guiding function, so that the threaded sleeve 10 moves along the length direction of the screw rod 9. The movable sleeve 12 also drives the limit plate 13 to move, and when the limit plate 13 moves to the position abutting against the inclined groove 28, the movable rod 27 is driven to move in the direction away from the fixed ring 25. When the movable rod 27 is separated from the fixed ring 25, the limit plate 13 fixes the movable rod 27 through the inclined groove 28. At this time, the threaded sleeve 10 continues to move and drives the moving contact 14 to move. When the moving contact 14 cooperates with the static contact 16, the motor 4 will be controlled to stop working, and the limit plate 13 will stop moving to ensure that there will be no interference with the movable rod 27.
[0039] Taking the embodiment combining all the features recorded in the present application as an example, when in use, when it is necessary to stir the material, the motor 4 works, driving the transmission rod 5 to rotate, thereby driving the stirring blade 6 to rotate. Under the action of the stirring blade 6, the material is stirred, and the transmission rod 5 also drives the cam 17 to rotate. Under the action of the movable rod 27, the cam 17 and the tilting block 24 are in the same horizontal plane. When the long axis of the cam 17 abuts against the inclined surface of the tilting block 24, under the action of the cam 17, the tilting block 24 is driven to move toward the bottom of the mixing barrel 1, and the guide tube 22 is driven to move along the length direction of the hollow rod 19. , thereby driving the No. 2 discharge chute 23 to move, so that the No. 1 spring 21 is stretched. When the No. 2 discharge chute 23 moves to the position connected with the No. 1 discharge chute 20, the material in the storage barrel 18 will enter the guide pipe 22 through the discharge chute and be transported to the mixing barrel 1. When the tilting block 24 moves to the end of the stroke, the No. 2 discharge chute 23 moves to the position overlapping with the No. 1 discharge chute 20. At this time, the conveying rate of the guide pipe 22 reaches the maximum. When the long axis of the cam 17 separates from the tilting block 24, the No. 1 spring 21 elastically contracts and drives the guide pipe 22 to move toward the hollow rod 19, so that the No. 1 discharge chute 20 The second material discharge chute 23 is in a separated state. At this time, the material guide tube 22 stops unloading. The transmission rod 5 also drives the driving wheel 7 to rotate, thereby driving the driven wheel 8 to rotate intermittently, so that the screw rod 9 rotates intermittently. When the screw rod 9 rotates, it drives the threaded sleeve 10 to move, thereby driving the movable sleeve 12 to move along the length direction of the transmission rod 5 through the connecting plate 11. The transmission rod 5 and the connecting plate 11 have a guiding function, so that the threaded sleeve 10 moves along the length direction of the screw rod 9 and will not rotate with the screw rod 9. The movable sleeve 12 also drives the limit plate 13 to move. When the limit plate 13 moves to abut against the inclined groove 28 When the movable rod 27 moves to the position away from the fixed ring 25, the No. 1 spring 21 contracts elastically and drives the guide tube 22 to move toward the hollow rod 19, so that the height of the tilting block 24 changes. When the cam 17 continues to rotate, it no longer cooperates with the tilting block 24, so that the storage barrel 18 stops unloading, the threaded sleeve 10 continues to move, and drives the moving contact 14 to move. When the moving contact 14 cooperates with the static contact 16, the motor 4 will be controlled to stop working.
[0040] It will be apparent to those skilled in the art that the invention is not limited to the details of the exemplary embodiments described above and that the invention can be implemented in other specific forms without departing from the spirit or essential features of the invention. Therefore, the embodiments should be considered exemplary and non-limiting in all respects, and the scope of the invention is defined by the appended claims rather than the foregoing description, and it is intended that all variations falling within the meaning and scope of the equivalent elements of the claims be included in the invention. Any reference numeral in a claim should not be considered as limiting the claim to which it relates.
[0041] In addition, it should be understood that although the present specification is described according to implementation modes, not every implementation mode contains only one independent technical solution. This description of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment may also be appropriately combined to form other implementation modes that can be understood by those skilled in the art.
Claims
1. A mixer for dynamically configuring the main components of float glass according to the ratio, comprising a mixing barrel, on which a plurality of fixed plates arranged equidistantly in a circle are fixedly mounted, on which a support plate and a storage barrel for holding the required materials are fixed, characterized in that: The mixer for dynamically configuring the main components of float glass also includes: A stirring assembly is arranged on the support plate and placed in the stirring barrel, and the stirring assembly stirs the material in the stirring barrel; The intermittent feeding mechanism is arranged on the material storage barrel and connected to the stirring assembly. The intermittent feeding mechanism includes an intermittent feeding assembly and a tilting block. The stirring assembly can drive the intermittent feeding assembly to move through the tilting block, so that the material in the material storage barrel is intermittently transported to the stirring barrel; A limiting mechanism is arranged in the mixing barrel and connected to the intermittent feeding assembly. The limiting mechanism is used to control the height of the tilting block through the intermittent feeding assembly. A trigger mechanism connected to the mixing assembly and cooperating with the limiting mechanism is arranged on the support plate. The trigger mechanism includes a trigger assembly and a limit plate. The trigger mechanism can drive the limiting mechanism to move through the limit plate to adjust the height of the tilting block through the intermittent feeding assembly. A transmission rod is rotatably mounted on the support plate, a cam that matches the tilting block is fixed on the transmission rod, and the transmission rod is connected to the trigger mechanism; The intermittent unloading assembly includes a hollow rod fixedly installed in the storage barrel, a No. 1 discharge slot is provided on the hollow rod, and symmetrically arranged limit slots are also provided in the hollow rod. The storage barrel is provided with a discharge structure connected to the hollow rod, and the discharge structure is connected to the limiting mechanism and fixedly connected to the tilting block; The discharging structure includes a material guide pipe movably installed in the hollow rod, a No. 2 material discharging groove opened on the material guide pipe, a No. 1 spring fixedly installed in the hollow rod and connected to the material guide pipe, a limit rod engaged with the limit groove is fixed on the material guide pipe, and the material guide pipe is connected to the limiting mechanism and fixedly connected to the tilting block.
2. A mixer for dynamically configuring the main components of float glass according to claim 1, characterized in that: The stirring assembly comprises a motor fixedly mounted on the support plate, wherein an output shaft of the motor is connected to a transmission rod, and a plurality of stirring blades equidistantly arranged in a circle are fixed on the transmission rod.
3. The mixer for dynamically configuring the main components of float glass according to claim 1, characterized in that: The limiting mechanism includes a fixing ring fixedly mounted on the material guide tube, a fixing sleeve fixedly mounted on the material storage barrel, an elastic component arranged in the mixing barrel and connected to the fixing sleeve and the fixing ring, and an inclined groove is provided on the elastic component, and the inclined groove cooperates with the limiting plate.
4. A mixer for dynamically configuring the main components of float glass according to claim 3, characterized in that: The elastic component includes a movable rod movably installed in the fixed sleeve, the movable rod is provided with a through slot, a partition plate engaged with the through slot is fixed on the fixed sleeve, a No. 2 spring abutting against the movable rod is fixed on the partition plate, and the movable rod abuts against the fixed ring.
5. A mixer for dynamically configuring the main components of float glass according to claim 2, characterized in that: The trigger assembly includes a baffle fixedly installed in the mixing barrel, a static contact is fixed on the baffle, a Maltese cross movement structure connected to the transmission rod is arranged in the mixing barrel, a moving contact cooperating with the static contact is fixed on the Maltese cross movement structure, and the Maltese cross movement structure is fixedly connected to the limit plate.
6. A mixer for dynamically configuring the main components of float glass according to claim 5, characterized in that: The Maltese cross movement structure includes a driving wheel fixedly mounted on the transmission rod, a screw rod rotatably mounted between the support plate and the baffle, and a driven wheel fixedly mounted on the screw rod and cooperating with the driving wheel. A driven member connected to the screw rod is arranged in the mixing barrel, and the driven member is fixedly connected to the moving contact and the limit plate.
7. A mixer for dynamically configuring the main components of float glass according to claim 6, characterized in that: The follower includes a threaded sleeve movably mounted on the screw rod, a connecting plate fixedly mounted on the threaded sleeve, and a movable sleeve movably mounted on the transmission rod. The movable sleeve is fixedly connected to the connecting plate and the limit plate, and the threaded sleeve is fixedly connected to the moving contact.
Citation Information
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